• Journal of Inorganic Materials
  • Vol. 34, Issue 1, 37 (2019)
Lou-Wen ZHANG1, Shao-Li SHEN2, Lu-Ying LI2, Zhi ZHANG1, Ni-Shuang LIU1, Yi-Hua GAO1、2, [in Chinese]1, [in Chinese]2, [in Chinese]2, [in Chinese]1, [in Chinese]1, and [in Chinese]1、2
Author Affiliations
  • 11. School of Physics, Huazhong University of Science and Technology, Wuhan 430074, China
  • 22. Center for Nanoscale Characterization & Devices, Wuhan National Laboratory for Optoelectronics, Huazhong University of Science and Technology, Wuhan 430074, China;
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    DOI: 10.15541/jim20180176 Cite this Article
    Lou-Wen ZHANG, Shao-Li SHEN, Lu-Ying LI, Zhi ZHANG, Ni-Shuang LIU, Yi-Hua GAO, [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese]. Application and Development of Cesium Lead Halide Perovskite Based Planar Heterojunction LEDs[J]. Journal of Inorganic Materials, 2019, 34(1): 37 Copy Citation Text show less
    References

    [1] A KOJIMA, Y SHIRAI, K TESHIMA et al. Organometal halide perovskites as visible-light sensitizers for photovoltaic cells. Journal of the American Chemical Society, 131, 6050-6051(2009).

    [2] W LEE J, H IM J, R LEE C et al. 6.5% efficient perovskite quantum-dot-sensitized solar cell. Nanoscale, 3, 4088-4093(2011).

    [3] J TEUSCHER, T MIYASAKA, M LEE M et al. Efficient hybrid solar cells based on meso-superstructured organometal halide perovskites. Science, 338, 643-647(2012).

    [4] J BURSCHKA, S MOON, N PELLET et al. Sequential deposition as a route to high-performance perovskite-sensitized solar cells. Nature, 499, 316-319(2013).

    [5] B JOHNSTON M, J SNAITH H, M LIU. Efficient planar heterojunction perovskite solar cells by vapour deposition. Nature, 501, 395-398(2013).

    [6] M GRÄTZEL. The light and shade of perovskite solar cells. Nat. Mater., 13, 838-842(2014).

    [7] H ZHOU, G LI, Q CHEN et al. Interface engineering of highly efficient perovskite solar cells. Science, 345, 542-546(2014).

    [8] H TSAI, R ASADPOUR, W NIE et al. High-efficiency solution- processed perovskite solar cells with millimeter-scale grains. Science, 347, 522-525(2015).

    [9] H NOH J, J JEON N, S YANG W et al. High-performance photovoltaic perovskite layers fabricated through intramolecular exchange. Science, 348, 1234-1237(2015).

    [10] H JUNG E, W PARK B, S YANG W et al. Iodide management in formamidinium-lead-halide-based perovskite layers for efficient solar cells. Science, 356, 1376-1379(2017).

    [11] N YANTARA, P BOIX P, A VELDHUIS S et al. Perovskite materials for light-emitting diodes and lasers. Advanced Materials, 28, 6804-6834(2016).

    [12] L LAI M, S MOGHADDAM R, K TAN Z et al. Bright light-emitting diodes based on organometal halide perovskite. Nature Nanotechnology, 9, 687-692(2014).

    [13] D DI, G LI, K TAN Z et al. Efficient light-emitting diodes based on nanocrystalline perovskite in a dielectric polymer matrix. Nano Letters, 15, 2640-2644(2015).

    [14] M RINCON, S SANCHEZ R, A JARAMILLOQUINTERO O et al. Bright visible-infrared light emitting diodes based on hybrid halide perovskite with spiro-OMeTAD as a hole-injecting layer. Journal of Physical Chemistry Letters, 6, 1883-1890(2015).

    [15] Y ZHAO, F YAN, J XING et al. High-efficiency light-emitting diodes of organometal halide perovskite amorphous nanoparticles. ACS Nano, 10, 6623-6630(2016).

    [16] Y JIN, N WANG, J WANG et al. Interfacial control toward efficient and low-voltage perovskite light-emitting diodes. Advanced Materials, 27, 2311-2316(2015).

    [17] H JEONG S, H PARK M, H CHO et al. Overcoming the electroluminescence efficiency limitations of perovskite light-emitting diodes. Science, 350, 1222-1225(2015).

    [18] L DOU, B WONG A, Y YU et al. Atomically thin two-dimensional organic-inorganic hybrid perovskites. Science, 349, 1518-1521(2015).

    [19] A SADHANALA, S AHMAD, B ZHAO et al. Blue-green color tunable solution processable organolead chloride-bromide mixed halide perovskites for optoelectronic applications. Nano Letters, 15, 6095-6101(2015).

    [20] H HEO J, H CHO, H KIM Y et al. Multicolored organic/inorganic hybrid perovskite light-emitting diodes. Advanced Materials, 27, 1248-1254(2015).

    [21] R CHUA M, P MUSSELMAN K, Z HOYE R L et al. Enhanced performance in fluorene-free organometal halide perovskite light-emitting diodes using tunable, low electron affinity oxide electron injectors. Advanced Materials, 27, 1414-1419(2015).

    [22] B KIM D, G BAEK, C YU J et al. High-performance planar perovskite optoelectronic devices: a morphological and interfacial control by polar solvent treatment. Advanced Materials, 27, 3492-3500(2015).

    [23] M YUAN, R COMIN, N QUAN L et al. Perovskite energy funnels for efficient light-emitting diodes. Nature Nanotechnology, 11, 872-877(2016).

    [24] N WANG, L CHENG, R GE et al. Perovskite light-emitting diodes based on solution-processed self-organized multiple quantum wells. Nature Photonics, 10, 699-704(2016).

    [25] A KERNER R, L ZHAO, Z XIAO et al. Efficient perovskite light-emitting diodes featuring nanometre-sized crystallites. Nature Photonics, 11, 108-115(2017).

    [26] Q LIAO, H ZHANG, K HU et al. Perovskite microdisk microlasers self-assembled from solution. Advanced Materials, 27, 3405-3410(2015).

    [27] M SALIBA, B PATEL J, M WOOD S et al. Structured organic- inorganic perovskite toward a distributed feedback laser. Advanced Materials, 28, 923-929(2016).

    [28] M AHMADI, T WU, Materials fundamental physics. Advanced. 29(41): 1605242-1-24. HU B. A review on organic-inorganic halide perovskite photodetectors: device engineering(2017).

    [29] J CHAE, R DONG, Y FANG et al. High-gain and low-driving- voltage photodetectors based on organolead triiodide perovskites. Advanced Materials, 27, 1912-1918(2015).

    [30] A ARMIN, Q LIN, L BURN P et al. Filterless narrowband visible photodetectors. Nature Photonics, 9, 687-694(2015).

    [31] W CHEN H, K JENA A, N SAKAI et al. A switchable high-sensitivity photodetecting and photovoltaic device with perovskite absorber. Journal of Physical Chemistry Letters, 6, 1773-1779(2015).

    [32] C RICCARDO, A VALERIO, I SAIDAMINOV M et al. 6: 8724-1-7(2015).

    [33] L ABDELHADY A, D SHEIKH A, G MACULAN et al. CH3NH3PbCl3 single crystals: inverse temperature crystallization and visible-blind UV-photodetector. Journal of Physical Chemistry Letters, 6, 3781-3786(2015).

    [34] M PENG, K YAN, X YU et al. High-performance perovskite memristor based on methyl ammonium lead halides. Journal of Materials Chemistry C, 4, 1375-1381(2016).

    [35] S LEE J, C GU. Flexible hybrid organic-inorganic perovskite memory. ACS Nano, 10, 5413-5418(2016).

    [36] N KEDEM, S GUPTA, M KULBAK et al. Cesium enhances long-term stability of lead bromide perovskite-based solar cells. Journal of Physical Chemistry Letters, 7, 167-172(2016).

    [37] D CAHEN, M KULBAK, G HODES. How important is the organic part of lead halide perovskite photovoltaic cells? efficient CsPbBr3 cells. Journal of Physical Chemistry Letters, 6, 2452-2456(2015).

    [38] S YAKUNIN, L PROTESESCU, I BODNARCHUK M et al. Nanocrystals of cesium lead halide perovskites (CsPbX3, X = Cl, Br, and I): novel optoelectronic materials showing bright emission with wide color gamut. Nano Letters, 15, 3692-3696(2015).

    [39] Y WU, Y WEI, Y HUANG et al. Capping CsPbBr3 with ZnO to improve performance and stability of perovskite memristors. Nano Research, 10, 1584-1594(2017).

    [40] Z ZANG, Q LIN, D LIU et al. Flexible all-inorganic perovskite CsPbBr3 nonvolatile memory device. ACS Applied Materials & Interfaces, 9, 6171-6176(2017).

    [41] X LIU, X SONG, C HUO et al. Field-effect transistors based on Van-Der-Waals-grown and dry-transferred all-inorganic perovskite ultrathin platelets. Journal of Physical Chemistry Letters, 8, 4785-4792(2017).

    [42] W LI, L ZHU, X CHANG et al. Carbon-based CsPbBr3 perovskite solar cells: all-ambient processes and high thermal stability. ACS Applied Materials & Interfaces, 8, 33649-33655(2016).

    [43] S PANIGRAHI, S JANA, T CALMEIRO et al. Imaging the anomalous charge distribution inside CsPbBr3 perovskite quantum dots sensitized solar cells. ACS Nano, 11, 10214-10221(2017).

    [44] K CHIANG, H LIN, C CHEN et al. 29(12): 1605290-1-7(2017).

    [45] Y ZHANG X, S ZENG Q, L FENG X et al. 30(9): 1705393-1-9. efficient solar cells with high open-circuit voltage over 1.3 V. Advanced Materials(2018).

    [46] X LI, D YU, J CHEN et al. Constructing fast carrier tracks into flexible perovskite photodetectors to greatly improve responsivity. ACS Nano, 11, 2015-2023(2017).

    [47] Y GU, Q SHAN, J XUE et al. Constructing Mie-scattering porous interface-fused perovskite films to synergistically boost light harvesting and carrier transport. Angewandte Chemie International Edition, 56, 5232-5236(2017).

    [48] B YANG, F ZHANG, J CHEN et al. 29(40): 1703758-1-8. fast all-inorganic perovskite-based photodetector via fast carrier diffusion. Advanced Materials(2017).

    [49] T YANG, Y ZHENG, Z DU et al. Superior photodetectors based on all-inorganic perovskite CsPbI3 nanorods with ultrafast response and high stability. ACS Nano, 12, 1611-1617(2018).

    [50] C MAO, C ZOU, Y HUANG C et al. CsPbBr3 perovskite quantum dot vertical cavity lasers with low threshold and high stability. ACS Photonics, 4, 2281-2289(2017).

    [51] L ZHANG, Q JIANG, X YANG et al. Ultra-bright and highly efficient inorganic based perovskite light-emitting diodes. Nature Communication, 8, 15640(2017).

    [52] C WOLF, H CHO, H KIM Y, Materials light-emitting diodes. Advanced et al. 1704587-1-24(2018).

    [53] D YU, F CAO, properties optical, features structural, Small optoelectronic applications., X LI et al. 13(9): 1603996-1-24(2017).

    [54] Y QIU, X HE. 29(32): 1700775-1-27. YANG S. Fully-inorganic trihalide perovskite nanocrystals: a new research frontier of optoelectronic materials. Advanced Materials(2017).

    [55] J LI, X SHAN. BADE S G R, et al. Single-layer halide perovskite light-emitting diodes with sub-band gap turn-on voltage and high brightness. Journal of Physical Chemistry Letters, 7, 4059-4066(2016).

    [56] W CHENCHENG R, W LIN H, T LY K et al. Near-infrared organic light-emitting diodes with very high external quantum efficiency and radiance. Nature Photonics, 11, 63-68(2017).

    [57] J SUPRAN G, G BAWENDI M, Y SHIRASAKI et al. Emergence of colloidal quantum-dot light-emitting technologies. Nature Photonics, 7, 13-23(2013).

    [58] X LI, J LI, J SONG et al. Quantum dot light-emitting diodes based on inorganic perovskite cesium lead halides (CsPbX3). Advanced Materials, 27, 7162-7167(2015).

    [59] L XU, J LI, T WANG et al. 29(5): 1603885-1-9(2017).

    [60] N QUAN L, Y ZHAO, J PAN et al. Highly efficient perovskite- quantum-dot light-emitting diodes by surface engineering. Advanced Materials, 28, 8718-8725(2016).

    [61] Y ZOU, L WU, Y TAN et al. Highly luminescent and stable perovskite nanocrystals with octylphosphonic acid as ligand for efficient light emitting diodes. ACS Applied Materials & Interfaces, 10, 3784-3792(2018).

    [62] C QIN, T MATSUSHIMA. SANDANAYAKA A S D, et al. Centrifugal-coated quasi-two-dimensional perovskite CsPb2Br5 films for efficient and stable light-emitting diodes. Journal of Physical Chemistry Letters, 47, 5415-5421(2017).

    [63] T CHIBA, J PU Y, K HOSHI et al. High-efficiency perovskite quantum-dot light-emitting devices by effective washing process and interfacial energy level alignment. ACS Applied Materials & Interfaces, 9, 18054-18060(2017).

    [64] M SANEHIRA E, Y HUANG C, C ZOU et al. 28(45): 455201-1-7(2017).

    [65] W HUANG, strength enhanced oscillator, P LI, J XU et al. 29(43): 1703703-1-10. application in light-emitting diodes. Advanced Materials(2017).

    [66] M PARK, W SOHN, V LE Q et al. Investigation of energy levels and crystal structures of cesium lead halides and their application in full-color light-emitting diodes. Advanced Electronic Materials, 3, 1600448(2017).

    [67] W CHOI J, T KIM, H SUH Y et al. High-performance CsPbX3 perovskite quantum dot light emitting devices via solid-state ligand exchange. ACS Applied Nano Materials, 1, 488-496(2018).

    [68] Z WANG, Z LUO, C ZHAO et al. Efficient and stable pure green all-inorganic perovskite CsPbBr3 light-emitting diodes with a solution-processed NiOx interlayer. Journal of Physical Chemistry C, 121, 28132-28138(2017).

    [69] W WANG, B XU, X ZHANG et al. Thin film perovskite light-emitting diode based on CsPbBr3, powders and interfacial engineering. Nano Energy, 37, 40-45(2017).

    [70] Q WANG, L SHI Y, Y HU et al. Vacuum-evaporated all-inorganic cesium lead bromine perovskites for high-performance light-emitting diodes. Journal of Materials Chemistry C, 5, 8144-8149(2017).

    [71] C WOLF, H CHO, S KIM J et al. 29(31): 1700579-1-8(2017).

    [72] F YAN, S BHAUMIK, N YANTARA et al. Inorganic halide perovskites for efficient light-emitting diodes. Journal of Physical Chemistry Letters, 6, 4360-4364(2015).

    [73] N YAN F, N WEI J, F JAMALUDIN N et al. Enhanced coverage of all-inorganic perovskite CsPbBr3 through sequential deposition for green light-emitting diodes. Energy Technology, 5, 1859-1865(2017).

    [74] Z YANG, L MENG, P YAO E, Materials their composites. Advanced et al. 29(23): 1606859-1-7. white LEDs based on inorganic perovskite nanocrystals(2017).

    [75] F NG Y, N YANTARA, F JAMALUDIN N et al. Rapid crystallization of all-inorganic CsPbBr3 perovskite for high-brightness light-emitting diodes. ACS Omega, 2, 2757-2764(2017).

    [76] B CHU, B ZHAO, F JIN et al. Morphology control towards bright and stable inorganic halide perovskite light-emitting diodes. Journal of Materials Chemistry C, 6, 1573-1578(2018).

    [77] Y LING, Y TIAN, X WANG et al. Enhanced optical and electrical properties of polymer-assisted all-inorganic perovskites for light-emitting diodes. Advanced Materials, 28, 8983-8989(2016).

    [78] X GUO, L SONG, Y HU et al. Efficient inorganic perovskite light-emitting diodes with polyethylene glycol passivated ultrathin CsPbBr3 films. Journal of Physical Chemistry Letters, 8, 4148-4154(2017).

    [79] X ZHANG, W WANG, B XU et al. Plasmonic perovskite light-emitting diodes based on Ag-CsPbBr3 system. ACS Applied Materials & Interfaces, 9, 4926-4931(2017).

    [80] Y LEE A, C YU J, B KIM D et al. Enhancing the performance and stability of perovskite nanocrystal light-emitting diodes with a polymer matrix. Advanced Materials Technologies, 2, 1700003(2017).

    [81] Y XIONG Z, Y ZHANG, X YU F et al. Full coverage all-inorganic cesium lead halide perovskite film for high-efficiency light-emitting diodes assisted by 1,3,5-tri(m-pyrid-3-yl-phenyl) benzene. Organic Electronics, 50, 480-484(2017).

    [82] T WU, Y ZOU, C WU et al. 27(28): 1700338-1-7. stability of all-inorganic perovskite light-emitting diodes by antisolvent vapor treatment. Advanced Functional Materials(2017).

    [83] S PARIDA, A KULKARNI S, F NG Y et al. Highly efficient Cs-based perovskite light-emitting diodes enabled by energy funnelling. Chemical Communications, 53, 12004-12007(2017).

    [84] B XU, J ZHANG, X ZHANG et al. All-inorganic perovskite nanocrystals for high-efficiency light emitting diodes: dual-phase CsPbBr3-CsPb2Br5 composites. Advanced Functional Materials, 26, 4595-4600(2016).

    [85] H LIN, X ZHANG, H HUANG et al. Enhancing the brightness of cesium lead halide perovskite nanocrystal based green light-emitting devices through the interface engineering with perfluorinated lonomer. Nano Letters, 16, 1415-1420(2016).

    [86] X ZHANG, W WANG, W CAO et al. Efficient light-emitting diodes based on green perovskite nanocrystals with mixed-metal cations. Nano Energy, 30, 511-516(2016).

    [87] S DAS, J MIR W, M JAGADEESWARARAO et al. Colloidal Mn-doped cesium lead halide perovskite nanoplatelets. ACS Energy Letters, 2, 537-543(2017).

    [88] X SHAI, P SUN, L ZUO et al. Efficient planar perovskite solar cells using halide Sr-substituted Pb perovskite. Nano Energy, 36, 213-222(2017).

    [89] R BEGUM, R PARIDA M, L ABDELHADY A et al. Engineering interfacial charge transfer in CsPbBr3 perovskite nanocrystals by heterovalent doping. Journal of the American Chemical Society, 139, 731-737(2017).

    [90] S ZOU, J LI, Y LIU et al. Stabilizing cesium lead halide perovskite lattice through Mn(II) substitution for air-stable light-emitting diodes. Journal of the American Chemical Society, 139, 11443-11450(2017).

    [91] N HAN B, J YAO, J GE et al. Ce3+-doping to modulate photoluminescence kinetics for efficient CsPbBr3 nanocrystals based light-emitting diodes. Journal of the American Chemical Society, 140, 3626-3634(2018).

    [92] M RICHTER J, C JELLICOE T. GLASS H F J, et al. Synthesis and optical properties of lead-free cesium tin halide perovskite nanocrystals. Journal of the American Chemical Society, 138, 2941-2944(2016).

    [93] J CHUANG Y, J CHEN L, R LEE C et al. Synthesis and optical properties of lead-free cesium tin halide perovskite quantum rods with high-performance solar cell application. Journal of Physical Chemistry Letters, 7, 5028-5035(2016).

    [94] J CHEN, B YANG, F HONG et al. Lead-free, air-stable all-inorganic cesium bismuth halide perovskite nanocrystals. Angewandte Chemie International Edition, 56, 12471-12475(2017).

    [95] W KONG, Y WANG, X TONG et al. High-performance red light photodetector based on lead-free bismuth halide perovskite film. ACS Applied Materials & Interfaces, 9, 18977-18985(2017).

    [96] A WANG, F MUHAMMAD, Y GUO et al. Controlled synthesis of lead-free cesium tin halide perovskite cubic nanocages with high stability. Chemistry of Materials, 29, 6493-6501(2017).

    [97] Y YANG, J ZHANG, H DENG et al. High quantum yield blue emission from lead-free inorganic antimony halide perovskite colloidal quantum dots. ACS Nano, 11, 9294-9302(2017).

    [98] Y YANG, K ZENG, M LENG et al. 28: 1704446-1-11. excellent stability. Advanced Functional Materials(2018).

    [99] Z SHI, Y LI, Y ZHANG et al. High-efficiency and air-stable perovskite quantum dots light-emitting diodes with an all-inorganic heterostructure. Nano Letters, 17, 313-321(2016).

    [100] J SONG, Q SHAN, J LI et al. All-inorganic quantum-dot light-emitting diodes based on perovskite emitters with low turn-on voltage and high humidity stability. Journal of Materials Chemistry C, 5, 4565-4570(2017).

    [101] S ZHUANG, D HU, X MA et al. Air-stable all inorganic green perovskite light emitting diodes based on ZnO/CsPbBr3/NiO heterojunction structure. Ceramics International, 44, 4685-4688(2018).

    [102] Z SHI, Y LI, S LI et al. Strategy of solution-processed all-inorganic heterostructure for humidity/temperature-stable perovskite quantum dot light-emitting diodes. ACS Nano, 12, 1462-1472(2018).

    Lou-Wen ZHANG, Shao-Li SHEN, Lu-Ying LI, Zhi ZHANG, Ni-Shuang LIU, Yi-Hua GAO, [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese]. Application and Development of Cesium Lead Halide Perovskite Based Planar Heterojunction LEDs[J]. Journal of Inorganic Materials, 2019, 34(1): 37
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